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本文引用的文献

1
Crystal structure of Lon protease: molecular architecture of gated entry to a sequestered degradation chamber.Lon 蛋白酶的晶体结构:隔离降解腔入口的分子构象。
EMBO J. 2010 Oct 20;29(20):3520-30. doi: 10.1038/emboj.2010.226. Epub 2010 Sep 10.
2
The M-domain controls Hsp104 protein remodeling activity in an Hsp70/Hsp40-dependent manner.M 结构域以依赖于 Hsp70/Hsp40 的方式控制 Hsp104 蛋白的重塑活性。
J Mol Biol. 2010 Sep 10;402(1):30-7. doi: 10.1016/j.jmb.2010.07.030. Epub 2010 Jul 21.
3
CryoEM structure of Hsp104 and its mechanistic implication for protein disaggregation.冷冻电镜结构解析 Hsp104 及其在蛋白解聚过程中的作用机制
Proc Natl Acad Sci U S A. 2010 May 4;107(18):8135-40. doi: 10.1073/pnas.1003572107. Epub 2010 Apr 19.
4
Towards a unifying mechanism for ClpB/Hsp104-mediated protein disaggregation and prion propagation.针对 ClpB/Hsp104 介导的蛋白质解聚和朊病毒传播的统一机制。
Biochem Cell Biol. 2010 Feb;88(1):63-75. doi: 10.1139/o09-118.
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Disaggregases in 4 dimensions.在 4 个维度上分解。
Curr Opin Struct Biol. 2010 Feb;20(1):46-53. doi: 10.1016/j.sbi.2009.12.014. Epub 2010 Jan 18.
6
Coupling ATP utilization to protein remodeling by ClpB, a hexameric AAA+ protein.通过 ClpB(六聚体 AAA+ 蛋白)将 ATP 利用与蛋白质重塑相偶联。
Proc Natl Acad Sci U S A. 2009 Dec 29;106(52):22233-8. doi: 10.1073/pnas.0911937106. Epub 2009 Nov 25.
7
Structures of asymmetric ClpX hexamers reveal nucleotide-dependent motions in a AAA+ protein-unfolding machine.不对称ClpX六聚体的结构揭示了AAA+蛋白解折叠机器中依赖核苷酸的运动。
Cell. 2009 Nov 13;139(4):744-56. doi: 10.1016/j.cell.2009.09.034.
8
An intersubunit signaling network coordinates ATP hydrolysis by m-AAA proteases.亚基间信号网络协调m-AAA蛋白酶的ATP水解。
Mol Cell. 2009 Sep 11;35(5):574-85. doi: 10.1016/j.molcel.2009.07.018.
9
Motor mechanism for protein threading through Hsp104.蛋白质穿过Hsp104的运动机制
Mol Cell. 2009 Apr 10;34(1):81-92. doi: 10.1016/j.molcel.2009.02.026.
10
Coupling and dynamics of subunits in the hexameric AAA+ chaperone ClpB.六聚体AAA+伴侣蛋白ClpB中亚基的偶联与动力学
J Mol Biol. 2008 Apr 18;378(1):178-90. doi: 10.1016/j.jmb.2008.02.026. Epub 2008 Feb 21.

AAA+ 解聚酶 Hsp104 的调控回路。

Regulatory circuits of the AAA+ disaggregase Hsp104.

机构信息

Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

J Biol Chem. 2011 May 20;286(20):17992-8001. doi: 10.1074/jbc.M110.216176. Epub 2011 Mar 23.

DOI:10.1074/jbc.M110.216176
PMID:21454552
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3093873/
Abstract

Yeast Hsp104 is an AAA+ chaperone that rescues proteins from the aggregated state. Six protomers associate to form the functional hexamer. Each protomer contains two AAA+ modules, NBD1 and NBD2. Hsp104 converts energy provided by ATP into mechanical force used to thread polypeptides through its axial channel, thereby disrupting protein aggregates. But how the action of its 12 AAA+ domains is co-ordinated to catalyze disaggregation remained unexplained. Here, we identify a sophisticated allosteric network consisting of three distinct pathways that senses the nucleotide state of AAA+ modules and transmits this information across the Hsp104 hexamer. As a result of this communication, NBD1 and NBD2 each adopt two distinct conformations (relaxed and tense) that are reciprocally regulated. The key element in the network is the NBD1-ATP state that enables Hsp104 to switch from a barely active [(T)(R)] state to a highly active [(R)(T)] state. This concerted switch involves both cis and trans protomer interactions and provides Hsp104 with the mechanistic scaffold to catalyze disaggregation. It prepares the chaperone for polypeptide binding and activates NBD2 to generate the power strokes required to resolve protein aggregates. ATP hydrolysis in NBD1 resolves the high affinity [(R)(T)] state and switches the chaperone back into the low affinity [(T)(R)] state. Our model integrates previously unexplained observations and provides the first comprehensive map of nucleotide-related allosteric signals in a class-1 AAA+ protein.

摘要

酵母 Hsp104 是一种 AAA+ 伴侣蛋白,可将蛋白质从聚集状态中解救出来。六个亚基缔合形成有功能的六聚体。每个亚基包含两个 AAA+ 模块,NBD1 和 NBD2。Hsp104 将由 ATP 提供的能量转化为机械力,用于将多肽穿过其轴向通道,从而破坏蛋白质聚集体。但是,其 12 个 AAA+ 结构域的作用如何协调以催化解聚仍然未知。在这里,我们确定了一个复杂的变构网络,该网络由三个不同的途径组成,这些途径可感知 AAA+ 模块的核苷酸状态,并将该信息传递到 Hsp104 六聚体中。由于这种通信,NBD1 和 NBD2 各自采用两种不同的构象(松弛和紧张),它们相互调节。该网络中的关键要素是 NBD1-ATP 状态,该状态使 Hsp104 能够从几乎无活性的 [(T)(R)] 状态切换到高度活跃的 [(R)(T)] 状态。这种协同切换涉及顺式和反式亚基相互作用,为 Hsp104 提供了催化解聚的机制支架。它为伴侣蛋白与多肽结合做好准备,并激活 NBD2 以产生解决蛋白质聚集体所需的动力冲程。NBD1 中的 ATP 水解可解决高亲和力的 [(R)(T)] 状态,并将伴侣蛋白切换回低亲和力的 [(T)(R)] 状态。我们的模型整合了以前未解释的观察结果,并为 1 类 AAA+ 蛋白中核苷酸相关变构信号的第一个全面图谱提供了依据。